Understanding Organic Photovoltaic Materials Using Simple Thermal Analysis Methodologies.

IF 11.7 1区 化学 Q1 CHEMISTRY, PHYSICAL
Aditi Khirbat, Oded Nahor, Sara Marina Barbier, Artem Levitsky, Jaime Martín, Gitti Frey, Natalie Stingelin
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引用次数: 0

Abstract

Large strides have been made in designing an ever-increasing set of modern organic materials of high functionality and thus, often, of high complexity, including semiconducting polymers, organic ferroelectrics, light-emitting small molecules, and beyond. Here, we review how broadly applied thermal analysis methodologies, especially differential scanning calorimetry, can be utilized to provide unique information on the assembly and solid-state structure of this extensive class of materials, as well as the phase behavior of intrinsically intricate multicomponent systems. Indeed, highly relevant insights can be gained that are useful, e.g., for further materials-discovery activities and the establishment of reliable processing protocols, in particular if combined with X-ray diffraction techniques, spectroscopic tools, and scanning electron microscopy enabled by vapor-phase infiltration staining. We, hence, illustrate that insights far richer than simple melting point- and glass-transition identification can be obtained with differential scanning calorimetry, rendering it a critical methodology to understand complex matter, including functional macromolecules and blends.

利用简单的热分析方法了解有机光伏材料。
在设计越来越多的高功能现代有机材料方面取得了长足进步,因此这些材料往往具有很高的复杂性,包括半导体聚合物、有机铁电体、发光小分子等。在此,我们回顾了如何利用广泛应用的热分析方法(尤其是差示扫描量热法)来提供有关这一大类材料的组装和固态结构的独特信息,以及内在错综复杂的多组分系统的相行为。事实上,结合 X 射线衍射技术、光谱工具和气相渗透染色扫描电子显微镜,可以获得非常有用的见解,例如有助于进一步的材料发现活动和建立可靠的加工协议。因此,我们说明,利用差示扫描量热法可以获得比简单的熔点和玻璃跃迁鉴定更丰富的见解,使其成为了解复杂物质(包括功能性大分子和混合物)的重要方法。物理化学年刊》第 75 卷的最终在线出版日期预计为 2024 年 4 月。修订后的预计日期请参见 http://www.annualreviews.org/page/journal/pubdates。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
28.00
自引率
0.00%
发文量
21
期刊介绍: The Annual Review of Physical Chemistry has been published since 1950 and is a comprehensive resource for significant advancements in the field. It encompasses various sub-disciplines such as biophysical chemistry, chemical kinetics, colloids, electrochemistry, geochemistry and cosmochemistry, chemistry of the atmosphere and climate, laser chemistry and ultrafast processes, the liquid state, magnetic resonance, physical organic chemistry, polymers and macromolecules, and others.
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